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Finite Element Modelling of Material Deformation and Damage by Tension under Cyclic Bending and Compression Test

机译:循环弯曲和压缩试验下材料变形和张力损伤有限元建模

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Material deformation is determined by strain and stress states resulted from loading conditions applied on the material during the manufacturing process. Different testing methods, for example, uniaxial tensile test and dome test have been used to predict material deformation behavior during the manufacturing processes. However, under a complex deformation mode, materials display distinct deformation behavior. In double side incremental forming (DSIF) process, it has been widely acknowledged that the material deformation consists of stretching, bending, shearing, compression with cyclic loading. This leads to a significant material formability enhancement comparing to conventional sheet metal forming processes. This phenomenon cannot be explained by using the currently available testing methods because the complexity of the DSIF process prohibits a direct investigation of the influence of individual deformation modes. To simplify the loading conditions and to investigate their individual and interactive effects contributing to the formability enhancement in DSIF, in this study, a novel testing method of Tension under Cyclic Bending and Compression (TCBC) is proposed, through which the effect of stretching, bending, compression and cyclic loading can be independently evaluated. A finite element (FE) damage modelling of the TCBC test was developed by incorporating the shear-modified Gurson-Tvergaard-Needleman (GTN) model into the Abaqus/Explicit solver. The results showed that the damage accumulation in the material was suppressed due to the localized and cyclic material deformation. An enhanced material formability was obtained by using the FE damage modelling and the periodical accumulation of the damage showed that the TCBC test could be a possible representation of the material deformation in DSIF.
机译:材料变形由应变和应力状态决定,从制造过程中施加在材料上的负载条件产生。例如,单轴拉伸试验和圆顶测试的不同测试方法已被用于预测制造过程中的材料变形行为。然而,在复杂的变形模式下,材料显示不同的变形行为。在双侧增量成型(DSIF)过程中,已被广泛承认,材料变形包括拉伸,弯曲,剪切,循环载荷压缩。这导致了与传统金属板形成过程相比的显着的材料成形性增强。这种现象不能通过使用当前可用的测试方法来解释,因为DSIF过程的复杂性禁止直接调查各种变形模式的影响。为了简化加载条件并调查他们的个人和交互式效应,在该研究中,提出了一种新颖的循环弯曲和压缩(TCBC)下的张力测试方法,通过该抗拉伸,弯曲的效果可以独立地评估压缩和循环载荷。通过将剪切改性的Gurson-Tvaard-Tibereman(GTN)模型纳入ABAQUS /显式求解器,开发了TCBC测试的有限元素(Fe)损伤模型。结果表明,由于局部化和循环材料变形,抑制了材料中的损坏积累。通过使用Fe损伤建模获得增强的材料可成形性,并且损伤的周期性积累表明,TCBC测试可能是DSIF中材料变形的可能表示。

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